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Native proteins trap high-energy transit conformations

机译:天然蛋白质捕获高能转运构象

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During protein folding and as part of some conformational changes that regulate protein function, the polypeptide chain must traverse high-energy barriers that separate the commonly adopted low-energy conformations. How distortions in peptide geometry allow these barrier-crossing transitions is a fundamental open question. One such important transition involves the movement of a non-glycine residue between the left side of the Ramachandran plot (that is, ? 0°). We report that high-energy conformations with ? ~ 0°, normally expected to occur only as fleeting transition states, are stably trapped in certain highly resolved native protein structures and that an analysis of these residues provides a detailed, experimentally derived map of the bond angle distortions taking place along the transition path. This unanticipated information lays to rest any uncertainty about whether such transitions are possible and how they occur, and in doing so lays a firm foundation for theoretical studies to better understand the transitions between basins that have been little studied but are integrally involved in protein folding and function. Also, the context of one such residue shows that even a designed highly stable protein can harbor substantial unfavorable interactions.
机译:在蛋白质折叠过程中,作为调节蛋白质功能的某些构象变化的一部分,多肽链必须穿过高能屏障,以分隔通常采用的低能构象。肽几何形状的畸变如何允许这些障碍跨越转换是一个基本的开放性问题。这种重要的转变之一是非甘氨酸残基在Ramachandran图的左侧(即0°)之间移动。我们报告高能构象与?通常预期仅以短暂的过渡状态出现的〜0°被稳定地困在某些高度解析的天然蛋白质结构中,对这些残基的分析提供了沿过渡路径发生的键角畸变的详细,实验得出的图。这种无法预料的信息为这种过渡是否可能发生以及如何发生提供了不确定性,并且为理论研究奠定了坚实的基础,以更好地了解很少研究但完全参与蛋白质折叠和分离的流域之间的过渡。功能。同样,一个这样的残基的背景表明,即使设计的高度稳定的蛋白质也可能具有大量不利的相互作用。

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